Obtaining Robust Performance of a Current fed Voltage Source Inverter for Virtual Inertia Response in a Low Short Circuit Ratio Condition
Abstract
:1. Introduction
2. Modeling and Validation
2.1. Validation of Detailed Switching Model
2.2. Small Signal Model of the CFVSI
3. Transfer Functions Verification
4. Generalized Representation and Controller Design
4.1. Generalized Representation
4.2. Weighting Functions
5. Results
5.1. Synthesized Robust Controller
5.2. Sensitivity Analysis
5.3. Time Domain Simulations
6. Conclusions
- While the regular loop-shaping method for tuning the inner-loop PI current controller is appropriate when the inverter-grid connection is strong (SCR > 10), it is inadequate in weak conditions (SCR < 3), even when the PLL-grid coupling dynamics are included in the loop transfer function.
- The proposed alternative solution, whereby the PLL-grid coupling was formulated as a single perturbation on the dynamics of the inverter system, allowed for easy translation of the problem into the H∞ robust control framework. Adequate inverter dynamics in the presence of a strong PLL-grid impedance coupling can then be achieved by tuning the controller to minimize the H∞ norm.
- The structured H∞ method [30] can be applied to tune the inner-loop PI controller against the PLL-grid impedance coupling, thereby avoiding an H∞ controller with higher order dynamics.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Appendix A
System matrix A: | Input matrix B: |
Output matrix C: | Feedforward matrix D = 0. |
Input vector U: | Output vector Y: |
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Parameter | Value | Unit |
---|---|---|
Rated power | 17 | kVA |
Rated voltage | 400 | V |
DC link voltage | 650–750 | V |
DC link capacitance C | 0.75 | |
Filter inductance L1; L2 | 22.3; 1.28 | |
Filter resistance RL1; RL2 | 200 | |
Filter capacitance Cf | 8.8 | |
Switching frequency, fs | 8–20 | kHz |
Fundamental frequency | 50 |
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Ally, C.Z.; de Jong, E.C.W. Obtaining Robust Performance of a Current fed Voltage Source Inverter for Virtual Inertia Response in a Low Short Circuit Ratio Condition. Energies 2021, 14, 5546. https://doi.org/10.3390/en14175546
Ally CZ, de Jong ECW. Obtaining Robust Performance of a Current fed Voltage Source Inverter for Virtual Inertia Response in a Low Short Circuit Ratio Condition. Energies. 2021; 14(17):5546. https://doi.org/10.3390/en14175546
Chicago/Turabian StyleAlly, Clint Z., and Erik C. W. de Jong. 2021. "Obtaining Robust Performance of a Current fed Voltage Source Inverter for Virtual Inertia Response in a Low Short Circuit Ratio Condition" Energies 14, no. 17: 5546. https://doi.org/10.3390/en14175546
APA StyleAlly, C. Z., & de Jong, E. C. W. (2021). Obtaining Robust Performance of a Current fed Voltage Source Inverter for Virtual Inertia Response in a Low Short Circuit Ratio Condition. Energies, 14(17), 5546. https://doi.org/10.3390/en14175546